Department of Chemistry and Geochemistry, Colorado School of Mines, Golden, CO 80401, USA.
Biotechnol J. 2013 Aug;8(8):931-45. doi: 10.1002/biot.201300073. Epub 2013 Jul 11.
The application of organic polymers and inorganic/organic hybrid systems in numerous fields of biotechnology has seen a considerable growth in recent years. Typically, organic polymers with diverse structures, compositional variations and differing molecular weights have been utilized to assemble polymeric nanosystems such as polymeric micelles, polymersomes, and nanohydrogels with unique features and structural properties. The architecture of these polymeric nanosystems involves the use of both hydrophobic and hydrophilic polymeric blocks, making them suitable as vehicles for diagnostic and therapeutic applications. Recently, "smart" or "intelligent" polymers have attracted significant attention in the biomedical field wherein careful introduction of specific polymeric modalities changes a banal polymeric nanosystem to an advanced stimuli-responsive nanosystem capable of performing extraordinary functions in response to an internal or external trigger such as pH, temperature, redox, enzymes, light, magnetic, or ultrasound. Further, incorporation of inorganic nanoparticles such as gold, silica, or iron oxide with surface-bound stimuli-responsive polymers offers additional advantages and multifunctionality in the field of nanomedicine. This review covers the physical properties and applications of both organic and organic/inorganic hybrid nanosystems with specific recent breakthroughs in drug delivery, imaging, tissue engineering, and separations and provides a brief discussion on the future direction.
近年来,有机聚合物和无机/有机杂化体系在生物技术的众多领域中的应用得到了极大的发展。通常,具有不同结构、组成变化和不同分子量的有机聚合物被用于组装具有独特特征和结构特性的聚合物纳米系统,如聚合物胶束、聚合物囊泡和纳米水凝胶。这些聚合物纳米系统的结构涉及使用疏水和亲水聚合物嵌段,使其适合作为诊断和治疗应用的载体。最近,“智能”聚合物在生物医学领域引起了极大的关注,其中通过仔细引入特定的聚合物模式,可以将普通的聚合物纳米系统转变为先进的刺激响应纳米系统,使其能够对内部或外部刺激(如 pH 值、温度、氧化还原、酶、光、磁或超声)做出响应,从而执行非凡的功能。此外,将金、硅或氧化铁等无机纳米粒子与表面结合的刺激响应聚合物结合使用,在纳米医学领域提供了额外的优势和多功能性。本综述涵盖了有机和有机/无机杂化纳米系统的物理性质和应用,特别介绍了在药物输送、成像、组织工程和分离方面的最新突破,并对未来的发展方向进行了简要讨论。
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